为研究加筋滤网碎石桩竖向承载性能,对现场海相淤泥质软土地基,采用预成孔加筋滤网碎石桩处理。通过超重型动力触探、平板载荷试验对处理效果进行评价,分析加筋滤网碎石桩单桩竖向承载性能。通过建立加筋滤网碎石桩单桩有限元模型,分析加筋滤网包裹长度对碎石桩单桩承载性能的影响规律。结果表明:加筋滤网碎石桩单桩竖向承载力特征值约是普通碎石桩的2.4倍;加筋滤网对碎石桩的侧向约束作用、承载力贡献均存在尺寸效应,对HP470型加筋滤网,当桩体直径大于1 200 mm时,加筋滤网对桩身的侧向约束作用减弱,对承载力的提高作用减小,碎石桩体发挥主要作用;加筋滤网碎石桩(2~3)d(d为桩径)深度范围内桩体碎石密实度对单桩竖向承载力有显著影响,对由桩顶至3d深度范围内的碎石经3 000 kN·m能级强夯加固,单桩竖向承载力特征值较夯前提高约4.1倍;当竖向荷载P=200~250 kPa时,对于HP470型加筋滤网,在满足承载力和变形的要求下,可选择包裹长度6d为最小包裹长度。研究成果可为加筋滤网碎石桩优化设计提供依据。
Abstract
Pre-drilled geotextile-encased granular columns were installed in silty clay. The reinforcement effect was evaluated through ultra-heavy dynamic penetration tests and plate loading tests, and the vertical bearing capacity of single geotextile-encased granular column was examined. The influence of geotextile-encased length on the vertical bearing capacity of single geotextile-encased granular column was investigated by building a finite element model of single column. Results unveiled that the characteristic value of vertical bearing capacity of single geotextile-encased granular column is about 2.4 times that of single ordinary granular column. Scale effect was found in the lateral constraint and contribution of bearing capacity to the column: the improvement to lateral constraint and bearing capacity weakens and the granular stone works as main component when the diameter of column is 1 200 mm with geotextile type of HP470. The compactness of granular stone exerts a remarkable influence on vertical bearing capacity in the depth ranging from (2-3)d (d represents diameter of column). Through dynamic compaction (3 000 kN·m) on granular stones in the depth range from column top to 3d, the vertical bearing capacity of the column increased by about 4.1 times. Under the requisite of guaranteeing bearing capacity and deformation, we suggest 6d as the minimum encased length (geotextile type of HP470) when vertical load is 200-250 kPa.
关键词
海相淤泥质土 /
加筋滤网碎石桩 /
竖向承载力 /
尺寸效应 /
包裹长度
Key words
marine silty clay /
geotextile-encased granular columns /
vertical bearing capacity /
scale effect /
encased length
{{custom_sec.title}}
{{custom_sec.title}}
{{custom_sec.content}}
参考文献
[1] 叶朝良,刘尧军,冯怀平.端夯扩碎石桩复合地基现场试验研究[J] .长江科学院院报,2016,33(2):62-66.
[2] 陈继彬,赵其华,彭社琴.碎石桩处理软土地基临界填筑高度的研究[J] .岩土力学,2015,36(2):470-476.
[3] 韩冉冉,徐满意,乔小利,等.水下超软土地基振冲碎石桩试验及参数控制[J] .岩土工程学报,2013,35(增刊2):612-616.
[4] HUGHES J M O, WITHERS N J. Reinforcing of Cohesive Soils with Stone Columns[J] . Ground Engineering, 1975, 7(3): 42-49.
[5] OUYANG F, ZHANG J J, LIAO W M, et al. Characteristics of the Stress and Deformation of Geosynthetic-encased Stone Column Composite Ground Based on Large-scale Model Tests[J] . Geosynthetics International, 2017, 24: 242-254.
[6] WU C S, HONG Y S. Laboratory Tests on Geosynthetic-encapsulated Sand Columns[J] . Geotextiles and Geomembranes, 2009, 27(2): 107-120.
[7] 陈翠琼.加筋滤网碎石桩在房屋软土地基加固中的应用[J] .辽宁工业大学学报(自然科学版),2018,38(1):45-49.
[8] MURUGESAN S, RAJAGOPAL K. Studies on the Behavior of Single and Group of Geosynthetic Encased Stone Columns[J] . Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2010, 136(1): 129-139.
[9] YOO C, LEE D. Performance of Geogrid-encased Stone Columns in Softground: Fullscale Load Tests[J] . Geosynthetics International, 2012, 19(6): 480-490.
[10] MIRANDA M, DA COSTA A, CASTRO J, et al. Influence of Geotextile Encasement on the Behaviour of Stone Columns: Laboratory Study[J] . Geotextiles and Geomembranes, 2017, 45(1): 14-22.
[11] MOHAPATRA S R, RAJAGOPAL K, SHARMA J S. Three-dimensional Numerical Modeling of Geosynthetic-encased Granular Columns[J] . Geotextiles and Geomembranes, 2017,45 (3): 131-141.
[12] 李良勇,陈建峰,徐 超,等.土工织物散体桩复合地基路堤土拱效应研究[J] .长江科学院院报,2017,34(2):63-68.
[13] HONG Y S, WU C S, YU Y S. Model Tests on Geotextile-encased Granular Columns under 1-g and Undrained Conditions[J] . Geotextiles and Geomembranes, 2016, 44(1): 13-27.
[14] HUGHES J M O, WITHERS N J. Reinforcing of Soft Cohesive Soils with Stone Columns[J] . Ground Engineering, 1974, 7(3): 42-49.
[15] SIVAKUMAR V, MCKELVEY D, GRAHAM J, et al. Triaxial Test on Model Sand Columns in Clay[J] . Canadian Geotechnical Journal, 2004, 41: 299-312.
[16] GNIEL J, BOUAZZA A. Improvement of Soft Soils Using Geogrid Encased Stone Solumns[J] . Geotextiles and Geomembranes, 2008,27(3): 167-175.
[17] CHEN J F, WANG X T, XUE J F, et al. Uniaxial Compression Behavior of Geotextile Encased Stone Columns[J] . Geotextiles and Geomembranes, 2018, 46(3): 277-283.
[18] 龚晓南.复合地基理论及工程应用[M] .北京:中国建筑工业出版社,2007.
[19] JGJ 79—2012,建筑地基处理技术规范[S] . 北京:中国建筑工业出版社,2012.
[20] JGJ 94—2008,建筑桩基技术规范[S] . 北京:中国建筑工业出版社,2008.
[21] 赵明华,顾美湘,张 玲,等. 竖向土工加筋体对碎石桩承载变形影响的模型试验研究[J] . 岩土工程学报,2014,36(9):1587-1593.
基金
住房城乡建设部研究开发项目(2016-K5-018);北京市科技创新领军人才资助项目(2016-2-01)